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Improved Fluorescent Protein Contrast and Discrimination by Optically Controlling Dark State Lifetimes

机译:通过光学控制暗态寿命来改善荧光蛋白的对比度和分辨力

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摘要

Modulation and optical control of photoswitchable fluorescent protein (PS-FP) dark state lifetimes drastically improves sensitivity and selectivity in fluorescence imaging. The dark state population of PS-FPs generates an out-of-phase fluorescence component relative to the sinusoidally modulated 488nm laser excitation. Because this apparent phase advanced emission results from slow recovery to the fluorescent manifold, we hasten recovery and, therefore, modulation frequency by varying co-illumination intensity at 405nm. As 405nm illumination regenerates the fluorescent ground state more rapidly than via thermal recovery, we experimentally demonstrate that secondary illumination can control PS-FPs dark state lifetime to act as an additional dimension for discriminating spatially and spectrally overlapping emitters. This experimental combination of out of phase imaging after optical modulation (OPIOM) and synchronously amplified fluorescence image recovery (SAFIRe) optically controls the fluorescent protein dark state lifetimes for improved time resolution, with the resulting modulation-based selective signal recovery being quantitatively modeled. The combined experimental results and quantitative numerical simulations further demonstrate the potential of SAFIRe-OPIOM for wide-field biological imaging with improved speed, sensitivity, and optical resolution over other modulation-based fluorescence microscopies.
机译:光开关荧光蛋白(PS-FP)暗态寿命的调制和光学控制可大大提高荧光成像的灵敏度和选择性。相对于正弦调制的488nm激光激发,PS-FP的暗态种群产生异相荧光分量。因为这种明显的相位提前发射是由于缓慢恢复到荧光歧管所致,所以我们通过改变405nm的共照射强度来加快恢复速度,从而加快调制频率。由于405nm照明比通过热恢复更快地再生荧光基态,我们实验证明了二次照明可以控制PS-FP的暗态寿命,作为区分空间和光谱重叠发射器的附加维度。这种光学调制后异相成像(OPIOM)和同步放大荧光图像恢复(SAFIRe)的实验性组合,可以光学控制荧光蛋白暗态寿命,以提高时间分辨率,并对基于调制的选择性信号恢复进行定量建模。组合的实验结果和定量数值模拟进一步证明了SAFIRe-OPIOM在宽场生物成像中的潜力,其速度,灵敏度和光学分辨率均优于其他基于调制的荧光显微镜。

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